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Hoeper, M. M.

Publications and source records attributed to Hoeper, M. M..

3 recordsLinked to original sources

Single-cell and spatial transcriptomics resolve airway obliteration in bronchiolitis obliterans syndrome

Background: Chronic lung allograft dysfunction (CLAD) is the leading cause of death beyond the first year after lung transplantation, and its most frequent phenotype is bronchiolitis obliterans syndrome (BOS), a fibrotic small-airway disease. Mechanistic work has focused on the immune compartment, yet intensified immunosuppression does not alter established disease. Aim: To resolve which structural cell states populate the BOS graft and how they are spatially organized during airway obliteration. Methods: We profiled explanted lungs from 33 BOS patients undergoing re-transplantation and 33 controls, combining single-nucleus RNA sequencing (14 BOS, 13 controls) with targeted spatial transcriptomics of 108 regions (27 BOS, 24 controls) and multiplex immunofluorescence validation. Single-nucleus data were integrated with a published restrictive allograft syndrome (RAS) atlas. Results: Across 175,128 nuclei and 1.67 million spatially resolved cells, BOS lungs harbored a profibrotic circuit of Aberrant Basaloid cells and CTHRC1+ fibrotic fibroblasts previously described in fibrotic lung diseases, including RAS. Spatial mapping identified a CXCL14+TNC+ injury-associated basal cell state arising early in the obliterative cascade, identifying basal cells as their major reservoir. CTHRC1+ fibroblasts expanded subepithelially replacing resident peribronchial fibroblasts, alongside a peribronchial vascular shift toward systemic venous endothelium. The circuit extended beyond the airway wall to the alveolar interface, defining two convergent remodeling fronts. Conclusion: BOS engages structural-cell circuits largely shared with RAS and fibrotic lung diseases, but along an airway-centered rather than parenchyma-centered axis. CLAD thus emerges as a spatial rather than cellular spectrum, defined by anatomical distribution more than cell identity. Shared structural programs may therefore be targetable across CLAD phenotypes.

cell biology↗

A multicenter spatial transcriptomics atlas of human tuberculosis and non-tuberculous mycobacterial disease

Granulomas are the hallmark of mycobacterial (MB) infections, forming structured immune environments that contain bacteria but also drive disease persistence. However, their spatial and functional organization remains unclear. Using spatial RNA sequencing on 38 patient samples, we identified five distinct granuloma niches: a necrotic core, an immune-activated inner niche, an inflammatory and an extracellular matrix (ECM)-remodeling middle niche, an outer structural niche, and a tertiary lymphoid structure niche supporting antigen presentation. Immune activity peaks in the inner niche, transitioning to fibrosis at the periphery. Lymph node granulomas display reduced fibroblast involvement but stronger JAK-STAT activation. Mycobacterium tuberculosis (MTB) granulomas exhibit heightened JAK-STAT and IFN-{gamma} signaling, while non-tuberculous mycobacteria (NTM) granulomas show increased hypoxia signatures. Compared to sarcoidosis, MB granulomas feature a structured adaptive immune response, marked by the clustering of plasma cells. Our findings, accessible via https://lab-li.ciim-hannover.de/mb-granuloma/, define key disease signatures, guiding biomarker discovery and therapeutic targeting in granuloma-related diseases.

bioinformatics↗

Spatial transcriptomics uncovers hybrid, pro-inflammatory and pro-fibrotic cellular niches in pulmonary granuloma of patients with chronic sarcoidosis

BackgroundSarcoidosis is a disease of unknown etiology characterized by the formation of immune cell accumulation (granuloma) in the lung and other tissues. Chronic sarcoidosis may lead to pulmonary fibrosis. AimTo unravel cellular niches within pulmonary granuloma of chronic sarcoidosis patients using spatial transcriptomics. MethodsSpatial transcriptomics using the Visium platform (10x Genomics) was performed on nine granuloma-containing lung explants from sarcoidosis patients. Validation of gene expression was performed through immunohistofluorescence protein staining and RNA in situ hybridization. ResultsSpatial gene expression covered 30,587 gene expression spots and 173 granulomas. A CD68+ macrophage niche was localized in the center of the granuloma, with a CD3+ T and CD20+ B cell niche in close proximity, surrounded by a COL3A1+ fibroblast niche. In the central granuloma macrophage niche, expression of the pro-fibrotic macrophage genes SPP1, CHIT1 and CHI3L1 was observed, genes whose expression has recently been described for macrophages in idiopathic pulmonary fibrosis. Additionally, pro-inflammatory macrophage genes were expressed in the central granuloma niche: macrophages appear armed for lysosomal degradation and ready for phagocytosis. Inner granuloma niches showed high responsiveness to interferon gamma (IFN-{gamma}), expressing a multitude of IFN-{gamma}-induced genes. High collagen and CTHRC1 expression were observed in granuloma fibroblasts niches, characteristics of pro-fibrotic lung remodeling. Ligand-receptor analysis identified pro-inflammatory and pro-fibrotic interactions between granuloma niches. ConclusionTaken together, macrophages in the center of the sarcoidosis granuloma form an armed-and-ready, hybrid pro-inflammatory and pro-fibrotic niche, supporting granuloma persistence through continuous IFN-{gamma}-stimulation and fibrotic remodeling conducted by fibrotic fibroblasts surrounding the granuloma.

molecular biology↗